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Fuss, C.

Publications and source records attributed to Fuss, C..

3 recordsLinked to original sources

Impact of aging on the immunological and microbial landscape of the lung during non-tuberculous mycobacterial infection

Nontuberculous mycobacteria (NTM) are environmentally ubiquitous and predominately cause pulmonary disease (NTMPD). The incidence of NTMPD has steadily increased and is now more prevalent than that of Mycobacterium tuberculosis (M. tb) in the US. Moreover, the prevalence of NTMPD increases with age; therefore, it is likely that the burden of NTMPD will continue to increase in the coming decades as the number of those over the age of 65 increased in the U.S population. However, the mechanisms leading to higher susceptibility and severity of NTMPD with aging are poorly defined. Here, we used a rhesus macaque model of intrabronchial infection with M. avium complex in young and aged animals to address this knowledge gap. Unilateral infection resulted in a robust inflammatory response predominantly in the inoculated lung, however, immune cell infiltration and antigen-specific T cell responses were detected in both lungs. Nasal, oral, and fecal swabs, and BAL samples were profiled using 16S amplicon sequencing. These data suggested that decompartmentalization of the lower respiratory microbiome was occurring, evidenced by detection of bacterial DNA typically found in the gut and oral-pharyngeal cavity in bronchoalveolar samples following infection. Radiographic studies, gross pathology, and histopathology examination revealed increased disease severity in aged compared to young animals with pulmonary consolidation, edema, and lesions. Finally, single cell RNA sequencing indicated that aged animals generated a dysregulated macrophage and CD8 T cell response to MAC infection.

immunology↗

Stabilisation of β-Catenin-WNT signalling by USP10 in APC-truncated colorectal cancer drives cancer stemness and enables super-competitor signalling

The contribution of deubiquitylating enzymes to {beta}-Catenin stabilisation in intestinal stem cells and colorectal cancer (CRC) is poorly understood. Here, we report the deubiquitylase USP10 as an APC-truncation- specific enhancer of {beta}-Catenin stability, potentiating WNT signalling in CRC and cancer stem cells. Mechanistically, interaction studies in various CRC cell lines and in vitro binding studies, together with computational modelling, revealed that USP10 binding to {beta}-Catenin is mediated via the unstructured N-terminus of USP10 and requires the absence of full-length APC. Notably, loss of USP10 in CRISPR engineered intestinal organoids reduces tumorigenic properties of CRC and blocks the super competitor-signalling of APC-mutated CRC. Furthermore, reduction of USP10 induces the expression of differentiation genes, and opposes the APC-truncated phenotype in an intestinal hyperplasia model of D.melanogaster. Taken together, our findings reveal USP10s role in intestinal tumourigenesis by stabilising {beta}-Catenin, leading to aberrant WNT signalling, enhancing cancer cell stemness and implicate the DUB USP10 as a cancer specific therapeutic vulnerability in Apc truncated CRC.

cancer biology↗

Functional, transcriptional, and microbial shifts associated with healthy pulmonary aging: insights from rhesus macaques

Older individuals are at increased risk of developing severe respiratory infections due to age-related changes in the immunological, microbial, and functional landscape of the lung. However, our understanding of the impact of age on the respiratory tract remains limited as samples from healthy humans are challenging to obtain and confounding variables such as smoking and environmental pollutant exposure make it difficult to assess the true impact of aging. On the other hand, studies in rodent models are biased by their specific pathogen free status. In this study, we utilize a rhesus macaque model of healthy aging to examine the functional, immunological, and microbial consequences of aging in the lung. Pulmonary function testing in this large (n=34 adult, n=49 aged) cross-sectional study established age and sex differences similar to humans supporting the translational accuracy of this model. Additionally, an increased abundance of myeloid cells (alveolar and infiltrating macrophages) and a concomitant decrease in T-cells were also observed in aged animals. Single cell RNA sequencing indicated a transcriptional shift in the pulmonary CD8+ T-cell population from GRZMB expressing cells to IFN expressing cells, while frequency of IL-1B expressing alveolar macrophages was significantly reduced. Interestingly, the lung microbiome of many animals was dominated by a single microbe, Tropheryma spp., the prevalence of which decreased with age. These data provide a comprehensive picture of the functional, microbial and immunological changes of the lung in healthy macaque aging and provide insight into the increased prevalence and severity of respiratory disease in the elderly.

immunology↗